Counterdiabatic vortex pump in spinor Bose-Einstein condensates
Ollikainen, T., Masuda, S., Möttönen, M., & Nakahara, M. (2017). Counterdiabatic vortex pump in spinor Bose-Einstein condensates. Physical Review A, 95(1), Article 013615. https://doi.org/10.1103/PhysRevA.95.013615
Published in
Physical Review ADate
2017Copyright
© 2017 American Physical Society. Published in this repository with the kind permission of the publisher.
Topological phase imprinting is a well-established technique for deterministic vortex creation in spinor BoseEinstein
condensates of alkali-metal atoms. It was recently shown that counterdiabatic quantum control may
accelerate vortex creation in comparison to the standard adiabatic protocol and suppress the atom loss due
to nonadiabatic transitions. Here we apply this technique, assisted by an optical plug, for vortex pumping to
theoretically show that sequential phase imprinting up to 20 cycles generates a vortex with a very large winding
number. Our method significantly increases the fidelity of the pump for rapid pumping compared to the case
without the counterdiabatic control, leading to the highest angular momentum per particle reported to date
for the vortex pump. Our studies are based on numerical integration of the three-dimensional multicomponent
Gross-Pitaevskii equation, which conveniently yields the density profiles, phase profiles, angular momentum,
and other physically important quantities of the spin-1 system. Our results motivate the experimental realization
of the vortex pump and studies of the rich physics it involves.
...
Publisher
American Physical SocietyISSN Search the Publication Forum
2469-9926Publication in research information system
https://converis.jyu.fi/converis/portal/detail/Publication/26531373
Metadata
Show full item recordCollections
Related items
Showing items with similar title or keywords.
-
Quantum knots in Bose-Einstein condensates created by counterdiabatic control
Ollikainen, T.; Masuda, S.; Möttönen, Mikko; Nakahara, M. (American Physical Society, 2017)We study theoretically the creation of knot structures in the polar phase of spin-1 Bose-Einstein condensates using the counterdiabatic protocol in an unusual fashion. We provide an analytic solution to the evolution of ... -
Three-dimensional skyrmions in spin-2 Bose–Einstein condensates
Tiurev, Konstantin; Ollikainen, Tuomas; Kuopanportti, Pekko; Nakahara, Mikio; Hall, David S.; Möttönen, Mikko (IOP Publishing; Deutsche Physikalische Gesellschaft, 2018)We introduce topologically stable three-dimensional skyrmions in the cyclic and biaxial nematic phases of a spin-2 Bose–Einstein condensate. These skyrmions exhibit exceptionally high mapping degrees resulting from the ... -
Applications of light-matter interaction in nanosciences
Hakala, Tommi (University of Jyväskylä, 2009)In this thesis, light matter interaction in nanoscale has been studied from various aspects. The interaction between surface plasmon polaritons (SPPs) and optically active organic molecules (Rhodamine 6G, Sulforhodamine ... -
Three-dimensional splitting dynamics of giant vortices in Bose-Einstein condensates
Räbinä, Jukka; Kuopanportti, Pekko; Kivioja, Markus; Möttönen, Mikko; Rossi, Tuomo (American Physical Society, 2018)We study the splitting dynamics of giant vortices in dilute Bose-Einstein condensates by numerically integrating the three-dimensional Gross-Pitaevskii equation in time. By taking advantage of tetrahedral tiling in the ... -
Synthetic electromagnetic knot in a three-dimensional skyrmion
Lee, Wonjae; Gheorghe, Andrei H.; Tiurev, Konstantin; Ollikainen, Tuomas; Möttönen, Mikko; Hall, David S. (American Association for the Advancement of Science, 2018)Classical electromagnetism and quantum mechanics are both central to the modern understanding of the physical world and its ongoing technological development. Quantum simulations of electromagnetic forces have the potential ...